Observation of the Chiral Soliton Lattice above Room Temperature

Author:

Brearton R.12ORCID,Moody S. H.3,Turnbull L. A.3ORCID,Hatton P. D.3ORCID,Štefančič A.4,Balakrishnan G.4ORCID,van der Laan G.1ORCID,Hesjedal T.12ORCID

Affiliation:

1. Diamond Light Source Harwell Science and Innovation Campus Didcot OX11 0DE UK

2. Department of Physics Clarendon Laboratory University of Oxford Oxford OX1 3PU UK

3. Department of Physics Durham University Durham DH1 3LE UK

4. Department of Physics University of Warwick Coventry CV4 7AL UK

Abstract

AbstractMagnetic chiral soliton lattices (CSLs) emerge from the helical phase in chiral magnets when magnetic fields are applied perpendicular to the helical propagation vector, and they show great promise for next‐generation magnetic memory applications. These one‐dimensional structures are previously observed at low temperatures in samples with uniaxial symmetry. Here, it is found that in‐plane fields are the key to stabilizing the CSL in cubic Co8Zn10Mn2 over the entire temperature range from 15 K to below the Curie temperature (365 K). Using small‐angle resonant elastic X‐ray scattering, it is observed that the CSL is stabilized with an arbitrary in‐plane propagation vector, while its thin plate geometry plays a deciding role in the soliton wavelength as a function of applied field. This work paves the way for high temperature, real world applications of soliton physics in future magnetic memory devices.

Funder

Engineering and Physical Sciences Research Council

Diamond Light Source

Publisher

Wiley

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